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Exact master equation and non-markovian decoherence for quantum dot quantum computing

机译:精确的主方程和非马尔可夫退相干用于量子点量子计算

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摘要

In this article, we report the recent progress on decoherence dynamics of electrons in quantum dot quantum computing systems using the exact master equation we derived recently based on the Feynman–Vernon influence functional approach. The exact master equation is valid for general nanostructure systems coupled to multi-reservoirs with arbitrary spectral densities, temperatures and biases. We take the double quantum dot charge qubit system as a specific example, and discuss in details the decoherence dynamics of the charge qubit under coherence controls. The decoherence dynamics risen from the entanglement between the system and the environment is mainly non-Markovian. We further discuss the decoherence of the double-dot charge qubit induced by quantum point contact (QPC) measurement where the master equation is re-derived using the Keldysh non-equilibrium Green function technique due to the non-linear coupling between the charge qubit and the QPC. The non-Markovian decoherence dynamics in the measurement processes is extensively discussed as well.
机译:在本文中,我们使用基于费恩曼-弗农影响函数方法的最新精确主方程,报道了量子点量子计算系统中电子退相干动力学的最新进展。精确的主方程对于耦合到具有任意光谱密度,温度和偏差的多储层的一般纳米结构系统有效。我们以双量子点电荷量子位系统为例,详细讨论了相干控制下电荷量子位的退相干动力学。由系统与环境之间的纠缠引起的退相干动力学主要是非马尔可夫模型。我们进一步讨论了量子点接触(QPC)测量引起的双点电荷量子位的去相干性,其中由于电荷量子位和电荷量子位之间的非线性耦合,使用Keldysh非平衡格林函数技术重新推导了主方程。 QPC。测量过程中的非马尔可夫退相干动力学也得到了广泛讨论。

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